PhoenixD Forschung
Publikationen

Publikationen im Rahmen des Exzellenzclusters PhoenixD

Die Forschungsleistung des Exzellenzclusters PhoenixD zeigt sich in den zahlreichen Publikationen, die seit 2019 veröffentlicht wurden. Eine kontinuierlich aktualisierte Übersicht finden Sie auf dieser Seite. In externen Publikationsportalen können Sie nach Veröffentlichungen mit der Identifikationsnummer (Project-ID) 390833453 und dem Kürzel EXC-2122 suchen.

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2025


Agarwal, G., Urrea-Quintero, J. H., Wessels, H., & Wick, T. (2025). Parameter identification and uncertainty propagation of hydrogel coupled diffusion-deformation using POD-based reduced-order modeling. Computational mechanics, 75, 515–545. https://doi.org/10.1007/s00466-024-02517-w
Babushkin, I., Husakou, A., Shi, L., Demircan, A., Kovacev, M., & Morgner, U. (2025). Photocurrent-induced harmonics in nanostructures. Nanophotonics. Vorabveröffentlichung online. https://doi.org/10.1515/nanoph-2024-0610
Borg, H., Zámbó, D., Bessel, P., Kranz, D., Rosebrock, M., Lübkemann-Warwas, F., Bigall, N. C., & Dorfs, D. (2025). Tailoring Bimetallic Pt/Pd Cryogels for Efficient Ethanol Electro-Oxidation. CHEMELECTROCHEM, 12(3), Artikel e202400552. https://doi.org/10.1002/celc.202400552
Gedeon, J., Allayarov, I., Lesina, A. C., & Hassan, E. (2025). Time-Domain Topology Optimization of Power Dissipation in Dispersive Dielectric and Plasmonic Nanostructures. IEEE Transactions on Antennas and Propagation. Vorabveröffentlichung online. https://doi.org/10.48550/arXiv.2407.05994, https://doi.org/10.1109/TAP.2024.3517156
Landes, T., Khanal, B. P., Bethge, H. L., Lehrich, T., Kilic, M. S., Renz, F., Zabic, M., Knoche, M., & Heinemann, D. (2025). Micromechanical behavior of the apple fruit cuticle investigated by Brillouin light scattering microscopy. Communications Biology, 8(1), Artikel 174. https://doi.org/10.1038/s42003-025-07555-5
Li, Y., Zheng, L., Caspary, R., & Roth, B. (2025). Scalar far-field diffraction modelling using nonuniform fast Fourier transform for diffractive optical phase elements design. Optics express, 33(1), 1222-1236. https://doi.org/10.1364/OE.540359
Morales, I., Koch, A., Wesemann, C., Graf, R. T., & Bigall, N. C. (2025). Magnetic nanoparticle-based hydrogels as reliable platforms to investigate magnetic interactions. NANOSCALE. Vorabveröffentlichung online. https://doi.org/10.1039/d4nr04286g
Stein, L., Borg, H., Wesemann, C., Zhao, Z., Moß, C., Trinke, P., Ismael, M., Bensmann, B., Bigall, N. C., Dorfs, D., & Hanke-Rauschenbach, R. (2025). Platinum Cryoaerogel as a Low Loading Cathode Catalyst in PEM Water Electrolysis: An Initial Concept Evaluation. ACS Applied Energy Materials, 8(1), 194-207. https://doi.org/10.1021/acsaem.4c02255
Yi, S., Klimkin, N. D., Brown, G. G., Smirnova, O., Patchkovskii, S., Babushkin, I., & Ivanov, M. (2025). Generation of Massively Entangled Bright States of Light during Harmonic Generation in Resonant Media. Physical Review X, 15(1), Artikel 011023. https://doi.org/10.48550/arXiv.2401.02817, https://doi.org/10.1103/PhysRevX.15.011023
Zabic, M., Reifenrath, M., Wegner, C., Bethge, H., Landes, T., Rudorf, S., & Heinemann, D. (2025). Point spread function estimation with computed wavefronts for deconvolution of hyperspectral imaging data. Scientific reports, 15(1), Artikel 673. https://doi.org/10.1038/s41598-024-84790-6

2024


Abdelmonem, A. M., Lavrentieva, A., & Bigall, N. C. (2024). Fabrication of surface-functionalizable amphiphilic curcumin nanogels for biosensing and biomedical applications. Chemical papers, 78(1), 533-546. https://doi.org/10.1007/s11696-023-03108-4
Allayarov, I., Calà Lesina, A., & Evlyukhin, A. B. (2024). Anapole mechanism of bound states in the continuum in symmetric dielectric metasurfaces. Physical Review B, 109(24), Artikel L241405. https://doi.org/10.1103/PhysRevB.109.L241405
Allayarov, I., Evlyukhin, A. B., Roth, D. J., Chichkov, B., Zayats, A. V., & Calà Lesina, A. (2024). Dynamic Nonlocal Dielectric Metasurfaces: Tuning Collective Lattice Resonances via Substrate–Superstrate Permittivity Contrast. Advanced Photonics Research, 5(1), Artikel 2300268. https://doi.org/10.1002/adpr.202300268
Allayarov, I., Evlyukhin, A. B., & Calà Lesina, A. (2024). Multiresonant all-dielectric metasurfaces based on high-order multipole coupling in the visible. Optics express, 32(4), 5641-5658. https://doi.org/10.1364/OE.511172
Almalla, A., Elomaa, L., Fribiczer, N., Landes, T., Tang, P., Mahfouz, Z., Koksch, B., Hillebrandt, K. H., Sauer, I. M., Heinemann, D., Seiffert, S., & Weinhart, M. (2024). Chemistry matters: A side-by-side comparison of two chemically distinct methacryloylated dECM bioresins for vat photopolymerization. Biomaterials Advances, 160, Artikel 213850. https://doi.org/10.1016/j.bioadv.2024.213850
Babicheva, V. E., & Evlyukhin, A. B. (2024). Mie-resonant metaphotonics. Advances in optics and photonics, 16(3), 539-658. https://doi.org/10.1364/AOP.510826
Bahmani, S., Evlyukhin, A. B., Hassan, E., & Calà Lesina, A. (2024). Inverse design of nanophotonic meta-atoms with desired multipoles. In D. L. Andrews, A. J. Bain, & A. Ambrosio (Hrsg.), Nanophotonics X: Proceedings Volume 12991 Artikel 129911Q (Proceedings of SPIE - The International Society for Optical Engineering; Band 12991). SPIE. https://doi.org/10.1117/12.3029562
Bethge, H. L., Weisheit, I., Dortmund, M. S., Landes, T., Zabic, M., Linde, M., Debener, T., & Heinemann, D. (2024). Automated image registration of RGB, hyperspectral and chlorophyll fluorescence imaging data. Plant Methods, 20(1), Artikel 175. https://doi.org/10.1186/s13007-024-01296-y
Bethge, H., León, A. M. T., Rüter, P., Rath, T., Heinemann, D., & Winkelmann, T. (2024). Towards automated phenotyping in plant tissue culture: In situ fluorescence monitoring. In D. Heinemann, & G. Polder (Hrsg.), Photonic Technologies in Plant and Agricultural Science Artikel 128790B (Proceedings of SPIE - The International Society for Optical Engineering; Band 12879). SPIE. https://doi.org/10.1117/12.2692924
Beuchler, S., Demircan, A., Endtmayer, B., Morgner, U., & Wick, T. (2024). Mathematical modeling and numerical multigoal-oriented a posteriori error control and adaptivity for a stationary, nonlinear, coupled flow temperature model with temperature dependent density. Computers and Mathematics with Applications, 175, 138-151. https://doi.org/10.48550/arXiv.2404.01823, https://doi.org/10.1016/j.camwa.2024.09.017